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PNAS Plus: Endohedral gallide cluster superconductors and superconductivity in ReGa5

机译:PNAS Plus:ReGa5中的内表面镓化物簇超导体和超导电性

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摘要

We present transition metal-embedded (T@Gan) endohedral Ga-clusters as a favorable structural motif for superconductivity and develop empirical, molecule-based, electron counting rules that govern the hierarchical architectures that the clusters assume in binary phases. Among the binary T@Gan endohedral cluster systems, Mo8Ga41, Mo6Ga31, Rh2Ga9, and Ir2Ga9 are all previously known superconductors. The well-known exotic superconductor PuCoGa5 and related phases are also members of this endohedral gallide cluster family. We show that electron-deficient compounds like Mo8Ga41 prefer architectures with vertex-sharing gallium clusters, whereas electron-rich compounds, like PdGa5, prefer edge-sharing cluster architectures. The superconducting transition temperatures are highest for the electron-poor, corner-sharing architectures. Based on this analysis, the previously unknown endohedral cluster compound ReGa5 is postulated to exist at an intermediate electron count and a mix of corner sharing and edge sharing cluster architectures. The empirical prediction is shown to be correct and leads to the discovery of superconductivity in ReGa5. The Fermi levels for endohedral gallide cluster compounds are located in deep pseudogaps in the electronic densities of states, an important factor in determining their chemical stability, while at the same time limiting their superconducting transition temperatures.
机译:我们介绍嵌入过渡金属(T @ Gan)的内面Ga-簇作为超导性的有利结构图案,并开发经验性,基于分子的电子计数规则,这些规则控制簇在二元相中假定的分层体系结构。在二元T @ Gan内膜簇系统中,Mo8Ga41,Mo6Ga31,Rh2Ga9和Ir2Ga9都是先前已知的超导体。著名的奇异超导体PuCoGa5和相关相也是该内面镓化物簇家族的成员。我们显示,像Mo8Ga41这样的缺电子化合物更喜欢具有顶点共享镓簇的体系结构,而像PdGa5这样的富含电子的化合物更喜欢边缘共享簇的体系结构。对于电子贫乏的角落共享架构,超导转变温度最高。基于此分析,假定以前未知的内面簇化合物ReGa5存在于中间电子数以及拐角共享和边缘共享簇体系结构的混合中。经验预测显示是正确的,并导致在ReGa5中发现超导性。内表面镓化物簇化合物的费米能级位于电子态的深伪间隙中,这是决定其化学稳定性的重要因素,同时又限制了它们的超导转变温度。

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